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Asked: 2026-05-11T09:21:16+00:00

when I code: var a = function() { alert(44) return function(){alert(33)} }()(); is this

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when I code:

var a = function() {     alert('44')     return function(){alert(33)} }()();

is this expression evaluated in the following order?

  1. define the function;
  2. pass its reference pointer to a
  3. a() is invoked
  4. return in a a new function pointer
  5. a() is invoked again

and if so why do I have a syntax error if I do:

function() {     alert('44')     return function(){alert(33)} }();

the interpreter wants a left operand first…

but this syntax works:

(   function()   {     alert('44')     return function(){alert(33)}   };  )()

the outer parenthesis what does meaning???

Thanks

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1 Answer

  1. It’s the syntax of the language. If you want to in-place execute an anonymous function, you must enclose it in parens.

    JS has these edge cases where the syntax is weirder than you expect. Take for example, evaling a string that has a JSON doesn’t work unless it’s wrapped with parens.

    // Wrong eval('{ ... }'); // Right eval('({ ... })');

    It’s the syntax of the language.

    That said, I think (and this is strictly IMHO), the steps you’ve outlined are not accurate.

    1. Function is defined and invoked. alert(’44’); happens as a result.
    2. The function returns another function which is also invoked. alert(’33’); happens.
    3. The innermost function doesn’t return anything, so a is effectively undefined. typeof a returns ‘undefined’.
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